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Non-Fermi liquid regimes with and without quantum criticality in Ce1−xYbxCoIn5

机译:Ce1-xYbxCoIn5中具有和不具有量子临界的非费米液体态

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摘要

One of the greatest challenges to Landau’s Fermi liquid theory—the standard theory of metals—is presented by complex materials with strong electronic correlations. In these materials, non-Fermi liquid transport and thermodynamic properties are often explained by the presence of a continuous quantum phase transition that happens at a quantum critical point (QCP). A QCP can be revealed by applying pressure, magnetic field, or changing the chemical composition. In the heavy-fermion compound CeCoIn5, the QCP is assumed to play a decisive role in defining the microscopic structure of both normal and superconducting states. However, the question of whether a QCP must be present in the material’s phase diagram to induce non-Fermi liquid behavior and trigger superconductivity remains open. Here, we show that the full suppression of the field-induced QCP in CeCoIn5 by doping with Yb has surprisingly little impact on both unconventional superconductivity and non-Fermi liquid behavior. This implies that the non-Fermi liquid metallic behavior could be a new state of matter in its own right rather than a consequence of the underlying quantum phase transition.
机译:Landau的Fermi液体理论(金属的标准理论)面临的最大挑战之一是具有强大电子相关性的复杂材料。在这些材料中,非费米液体的传输和热力学性质通常通过在量子临界点(QCP)处发生的连续量子相变来解释。可以通过施加压力,磁场或改变化学成分来显示QCP。在重铁化合物CeCoIn5中,假设QCP在定义正常态和超导态的微观结构中起决定性作用。但是,是否必须在材料的相图中出现QCP才能诱发非费米液体行为并触发超导性的问题仍然悬而未决。在这里,我们表明通过掺杂Yb来完全抑制CeCoIn5中的场致QCP对非常规超导电性和非费米液体行为的影响都很小。这意味着非费米液态金属行为本身可能是物质的新状态,而不是潜在的量子相变的结果。

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